A server circulating heat dissipation device based on solar power supply
Through the solar telescopic components and oil-water heat exchange system, the problems of low space utilization, insufficient power generation efficiency and unstable heat dissipation of solar-powered servers are solved, efficient heat dissipation and water resource reuse are achieved, and it has an intelligent swimming pool temperature control function.
Patent Information
- Application Number
- CN202411777642.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-05
- Publication Date
- 2025-09-30
- Estimated Expiration
- 2044-12-05
AI Technical Summary
Existing solar-powered servers have poor space utilization, insufficient power generation efficiency, unstable heat dissipation, and cannot effectively utilize the water resources generated by circulating heat.
Using solar telescopic components and an oil-water heat exchange system, the solar panels are driven by motors to increase space utilization, thermal oil and spiral pipes are used to enhance heat dissipation performance, and heat is transferred to the water flow through an oil-water heat exchanger to regulate the temperature of the swimming pool.
It improves the space utilization and power generation efficiency of solar panels, stabilizes the heat dissipation performance of servers, realizes the reuse of circulating hot water resources, and has an intelligent swimming pool temperature regulation function.
Smart Images

Figure CN119440202B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of solar power supply, and in particular to a server circulating heat dissipation device based on solar power supply. Background Art
[0002] With the development of the Internet, servers are widely used in hardware virtualization, cloud computing, big data processing, network security, performance optimization and other fields. Nowadays, in order to save energy, many servers are powered by solar energy.
[0003] Conventional solar-powered servers typically require large solar panels, resulting in poor space utilization. Furthermore, the server's heat dissipation is insufficient, easily leading to high temperatures that affect performance. Furthermore, the water discharged by the heat generated by the server cannot be effectively utilized. Summary of the Invention
[0004] (1) Technical issues to be solved
[0005] The problem to be solved by the present invention is to provide a server circulating heat dissipation device based on solar power supply, so as to overcome the defects of solar power supply servers in the prior art, such as poor space utilization, insufficient power generation efficiency, unstable heat dissipation and inability to reuse the water resources generated by circulating heat.
[0006] (2) Technical solution
[0007] To solve the above technical problems, the present invention provides a server circulation heat dissipation device based on solar power supply, comprising:
[0008] A solar mechanism, the solar mechanism includes a solar telescopic assembly and a solar panel, the solar telescopic assembly includes a first base plate, a first fixed block, a first pulley, a first belt, a first transmission shaft, a motor, a second base plate, a second fixed block, a second pulley, a second belt, a second transmission shaft, a linkage block and a third base plate, the first base plate is set on the ground, two ends of the first base plate are provided with first fixed blocks, two ends of the second base plate are respectively provided with the first transmission shaft, two ends of the first transmission shafts are respectively provided with the first pulleys, the first pulley is rollingly connected to the first fixed block, the two first pulleys on the same side of the second base plate are connected by the first belt, one of the first transmission shafts is connected to the output end of the motor, and the motor drives the second base plate to slide on the first base plate;
[0009] The second base plate has two ends connected to second fixed blocks, the two ends of the second pulley are connected to the second transmission shaft, the two sides of the two second transmission shafts are connected to the second pulley, the second pulley is in rolling connection with the second fixed block, the linkage block is L-shaped, one end of the linkage block is connected to the first belt, and the other end of the linkage block is connected to the second belt;
[0010] A first notch is formed on the first fixing block, a limit rod is provided at the bottom end of the second bottom plate, and the limit rod is inserted into the first notch. A stable connection component is provided on one side of the first bottom plate, the second bottom plate, and the third bottom plate, and the solar panel is connected to the stable connection component;
[0011] A server mechanism, the server mechanism comprising a server housing and a server body, an oil tank being provided between the server housing and the server body, and a water inlet and a water outlet being provided on the server housing;
[0012] An oil-water heat exchanger is connected to the water outlet through a first pipe, and is connected to the water inlet through a second pipe. The oil-water heat exchanger is provided with a water inlet and a water outlet, and the water inlet is connected to the swimming pool.
[0013] As described above, for the server circulating heat dissipation device based on solar power supply, optionally, a limit plate is provided on one side of the solar mechanism, and the limit plate is connected to the first bottom plate by bolts.
[0014] As described above, the solar-powered server circulation heat dissipation device, optionally, the stable connection component includes a stable connection block and a sliding buckle, and sliding seats are provided at both ends of the solar panel. The solar panel connected to the first base plate is slidingly connected to the sliding buckle in the stable connection component on the second base plate, and the solar panel connected to the second base plate is slidingly connected to the sliding buckle in the stable connection component on the third base plate.
[0015] As described above, in the server circulating heat dissipation device based on solar power supply, optionally, the stable connection block is provided at the other end of the third base plate.
[0016] As described above, for the server circulating heat dissipation device based on solar power supply, optionally, the solar energy mechanism is connected to the battery and the inverter respectively, and the inverter is connected to the external power grid.
[0017] As described above, in the server circulating heat dissipation device based on solar power supply, optionally, the inverter is connected to the power control cabinet, the power control cabinet is connected to the server mechanism, and heat transfer oil is placed in the oil tank.
[0018] As described above, in the server circulating heat dissipation device based on solar power supply, optionally, an oil pump is provided at the middle end of the first pipeline.
[0019] As described above, in the solar-powered server circulating heat dissipation device, optionally, the oil-water heat exchanger includes a spiral pipe and a fin plate, one end of the spiral pipe is connected to the first pipe, and the other end of the spiral pipe is connected to the second pipe, and the fin plate is arranged on the spiral pipe.
[0020] As described above, for the server circulating heat dissipation device based on solar power supply, optionally, a water tank is provided next to the oil-water heat exchanger, the water tank is connected to the water outlet through a pipeline, and a cooler is provided on the water tank.
[0021] As described above, the server circulation heat dissipation device based on solar power supply, optionally, the cooler includes a cooling shell, a coolant, a compressor, a condenser and a fan, the cooling shell is arranged on the water tank, the coolant is arranged in the cooling shell, the compressor is connected to the coolant, the compressor is connected to the condenser through a pipe, the fan is arranged adjacent to the pipe, a condensation pipe is arranged next to the condenser, and the condensation pipe is arranged in the water tank.
[0022] (3) Beneficial effects
[0023] The present invention provides a server circulating heat dissipation device based on solar power supply, which has the following beneficial effects:
[0024] (1) The present invention drives the first transmission shaft to rotate by a motor, driving the first pulley to roll on the first fixed block. The first pulley has a first belt, thereby driving the second base plate to slide on the first base plate. The second base plate has a second fixed block, and the second fixed block is provided with a second pulley. The second pulley is provided with a second belt. The second transmission shaft is fixed to the third base plate. The first belt and the second belt are connected by a linkage block. The rotation of the first belt drives the rotation of the second belt, so that the third base plate is displaced under the drive of the second belt. A stable connection component is provided on the first base plate, the second base plate, and the third base plate. The stable connection component is connected to the solar panel and provides support for the solar panel. This design can ensure that the extension and contraction of the entire solar mechanism can be controlled by a single motor. While saving space, it can greatly and stably increase the area of the solar panel, increase the power generation speed, and improve the space utilization rate.
[0025] (2) The present invention provides an oil tank between the server housing and the server body. The oil tank contains thermal oil, which has high thermal conductivity and further improves as the temperature rises. The thermal oil transfers heat to the water flow in the oil-water heat exchanger. This design effectively improves heat dissipation performance and ensures server performance.
[0026] (3) The present invention provides a spiral pipe and a fin plate in the oil-water heat exchanger. The spiral pipe is longer and the fin plate can increase the contact area between the spiral pipe and the water flow. This design can effectively improve the heat exchange efficiency of the oil-water heat exchanger, thereby improving the heat dissipation effect.
[0027] (4) The present invention transmits the water flow of the oil-water heat exchanger to the water tank through a water pump. The water pump can be connected between the water tank and the connecting pipe of the oil-water heat exchanger by an operator in this field. A cooler is connected to the water tank. The coolant in the cooler is placed in a cooling shell. The compressor compresses the coolant, the fan cools the coolant, and the condenser refrigerates. The cooler can be adjusted according to the actual needs of the operator. The water in the water tank can be discharged into the swimming pool. When the swimming pool needs to be heated, the cooler does not work, and the water flow after heat exchange by the oil-water heat exchanger can achieve heating of the swimming pool. When the swimming pool needs to be cooled, the cooler works, and the cooled water flow can achieve cooling of the swimming pool. This design can intelligently adjust the water temperature of the swimming pool while dissipating heat to the server. BRIEF DESCRIPTION OF THE DRAWINGS
[0028] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the following briefly introduces the drawings required for use in the embodiments. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without any creative work.
[0029] Figure 1 This is a three-dimensional diagram of a server circulating heat dissipation device based on solar power supply according to the present invention;
[0030] Figure 2 This is a top view of a server circulating heat dissipation device based on solar power supply according to the present invention;
[0031] Figure 3 This is a cross-sectional view of a server circulating heat dissipation device based on solar power supply according to the present invention;
[0032] Figure 4 for Figure 3 A partial schematic diagram of the middle part;
[0033] Figure 5 A three-dimensional diagram of a solar mechanism of a server circulating heat dissipation device based on solar power supply according to the present invention;
[0034] Figure 6 A side view of a solar mechanism of a server circulating heat dissipation device based on solar power supply according to the present invention;
[0035] Figure 7 This is a front view of a solar mechanism of a server circulating heat dissipation device based on solar power supply according to the present invention;
[0036] Figure 8 This is a cross-sectional view of a cooler of a server circulating heat dissipation device based on solar power supply according to the present invention;
[0037] Component names corresponding to the reference numerals in the figures are: 1. solar mechanism; 11. solar telescopic assembly; 12. solar panel; 13. first base plate; 14. first fixing block; 15. first pulley; 16. first belt; 17. first transmission shaft; 18. motor; 19. second base plate; 20. second fixing block; 21. second pulley; 22. second belt; 23. second transmission shaft; 24. linkage block; 25. third base plate; 26. first notch; 27. limiting rod; 28. limiting plate; 3. stable connection assembly; 31. stable connection block; 32. sliding buckle; 33. Sliding seat; 4. Server mechanism; 41. Server housing; 42. Server body; 43. Oil tank; 44. Water inlet; 45. Water outlet; 5. Oil-water heat exchanger; 51. First pipeline; 52. Second pipeline; 53. Water inlet; 54. Water outlet; 55. Swimming pool; 56. Spiral pipe; 57. Fin plate; 6. Battery; 61. Inverter; 62. Power control cabinet; 63. Oil pump; 7. Water tank; 71. Cooler; 72. Cooling housing; 73. Coolant; 74. Compressor; 75. Condenser; 76. Fan; 77. Condensation pipe. DETAILED DESCRIPTION
[0038] The present application is described in detail below with reference to the accompanying drawings and specific embodiments.
[0039] The following describes the embodiments of the present application through specific examples, and those skilled in the art can easily understand other advantages and effects of the present application from the contents disclosed in this specification. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments. The present application can also be implemented or applied through other different specific embodiments, and the details in this specification can also be modified or changed in various ways based on different viewpoints and applications without departing from the spirit of the present application. It should be noted that, in the absence of conflict, the features in the following embodiments and embodiments can be combined with each other. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without making creative work are within the scope of protection of this application.
[0040] It should be noted that various aspects of the embodiments within the scope of the appended claims are described below. It should be apparent that the aspects described herein can be embodied in a wide variety of forms, and any specific structure and / or function described herein is merely illustrative. Based on this application, it should be understood by those skilled in the art that an aspect described herein can be implemented independently of any other aspect, and two or more of these aspects can be combined in various ways. For example, any number and aspect described herein can be used to implement an apparatus and / or practice a method. In addition, other structures and / or functionalities other than one or more of the aspects described herein can be used to implement this apparatus and / or practice this method.
[0041] It should also be noted that the illustrations provided in the following embodiments are only schematic illustrations of the basic concept of the present application. The illustrations only show components related to the present application and are not drawn according to the number, shape and size of components in actual implementation. In actual implementation, the type, quantity and proportion of each component can be changed at will, and the component layout type may also be more complicated.
[0042] Additionally, in the following description, specific details are provided to provide a thorough understanding of the examples, however, one skilled in the art will appreciate that the examples can be practiced without these specific details.
[0043] The following describes the technical solutions provided by various embodiments of the present application in conjunction with the accompanying drawings.
[0044] See Figures 1 to 8 The present invention provides a solar-powered server heat dissipation system, comprising a solar energy unit 1, a server unit 4, and an oil-water heat exchanger 5. Solar energy unit 1 provides energy for server unit 4, and the stored electricity can also be transmitted to an external power grid. Oil-water heat exchanger 5 dissipates heat from the server, and the heat-exchanged water flows into a swimming pool 55 to regulate the temperature of the pool.
[0045] exist Figures 1 to 8In an optional embodiment, the solar mechanism 1 includes a solar telescopic assembly 11 and a solar panel 12. The solar telescopic assembly 11 includes a first base plate 13, a first fixed block 14, a first pulley 15, a first belt 16, a first transmission shaft 17, a motor 18, a second base plate 19, a second fixed block 20, a second pulley 21, a second belt 22, a second transmission shaft 23, a linkage block 24 and a third base plate 25. The first base plate 13 is set on the ground, and the first fixed blocks 14 are provided at both ends of the first base plate 13. The first transmission shaft 17 is provided at both ends of the second base plate 19. The first pulleys 15 are respectively provided at both ends of the two first transmission shafts 17. The first pulley 15 is rollingly connected to the first fixed block 14. The two first pulleys 15 on the same side of the second base plate 19 are connected by the first belt 16. One of the first transmission shafts 17 is connected to the output end of the motor 18, and the motor 18 drives the second base plate 19 to slide on the first base plate 13.
[0046] At the same time, the second fixed blocks 20 are connected to both ends of the second base plate 19, and the second transmission shaft 23 is connected to both ends of the second pulley 21. The second transmission shaft 23 is arranged at both ends of the third base plate 25. The two sides of the two second transmission shafts 23 are connected to the second pulleys 21. The second pulleys 21 are rollingly connected to the second fixed blocks 20. The linkage block 24 is L-shaped, one end of the linkage block 24 is connected to the first belt 16, and the other end of the linkage block 24 is connected to the second belt 22.
[0047] It should be noted that, while the first belt 16 rotates, the second belt 22 rotates synchronously due to the action of the linkage block 24 , and the second belt 22 drives the second pulley 21 to rotate, driving the third base plate 25 to slide on the second base plate 19 .
[0048] At the same time, a first slot 26 is provided on the first fixed block 14, and a limiting rod 27 is provided at the bottom end of the second base plate 19, and the limiting rod 27 is inserted into the first slot 26. A stable connection component 3 is provided on one side of the first base plate 13, the second base plate 19 and the third base plate 25, and the solar panel 12 is connected to the stable connection component 3.
[0049] It should be noted that the cooperation between the first slot 26 and the limiting rod 27 can limit the second base plate 19 during movement to prevent the second base plate 19 from separating from the first base plate 13. At the same time, the limiting rod 27 can also provide support for the second base plate 19 during movement.
[0050] Furthermore, the stable connection component 3 includes a stable connection block 31 and a sliding buckle 32, and sliding seats 33 are provided at both ends of the solar panel 12. The solar panel 12 connected to the first base plate 13 is slidingly connected to the sliding buckle 32 in the stable connection component 3 on the second base plate 19, and the solar panel 12 connected to the second base plate 19 is slidingly connected to the sliding buckle 32 in the stable connection component 3 on the third base plate 25.
[0051] Furthermore, a stable connection block 31 is disposed at the other end of the third bottom plate 25 .
[0052] It should be noted that the secure connection block 31 can be used to secure the solar panel 12 so that it can be unfolded / folded as the solar telescopic assembly 11 is extended or retracted. This can effectively improve space utilization and, at the same time, increase solar energy utilization efficiency.
[0053] exist Figures 1 to 8 In an optional embodiment, a limit plate 28 is provided on one side of the solar mechanism 1, and the limit plate 28 is connected to the first base plate 13 by bolts. The limit plate 28 can limit the first base plate 13, the second base plate 19 and the third base plate 25 to prevent them from falling off.
[0054] Furthermore, the solar energy system 1 is connected to a battery 6 and an inverter 61, which is connected to the external power grid. The battery 6 stores the electricity generated by the solar energy system 1, while the inverter 61 converts the electricity into mechanical energy. Furthermore, the inverter 61 can be connected to the external power grid to output excess electricity, thus maximizing economic efficiency.
[0055] exist Figures 1 to 8 In an optional embodiment, the server mechanism 4 includes a server shell 41 and a server body 42 , an oil tank 43 is provided between the server shell 41 and the server body 42 , and a water inlet 44 and a water outlet 45 are provided on the server shell 41 .
[0056] Furthermore, the inverter 61 is connected to the power control cabinet 62 , and the power control cabinet 62 is connected to the server mechanism 4 .
[0057] It should be noted that the oil tank 43 contains heat-conducting oil, which has high thermal conductivity. When the server temperature rises, the oil can have greater thermal conductivity and a good heat exchange effect.
[0058] Furthermore, an oil pump 63 is provided at the middle end of the first pipe 51. The oil pump 63 can provide power for the movement of the heat transfer oil.
[0059] exist Figures 1 to 8In an optional embodiment, the oil-water heat exchanger 5 is connected to the water outlet 45 through a first pipe 51, and the oil-water heat exchanger 5 is connected to the water inlet 44 through a second pipe 52. The oil-water heat exchanger 5 is provided with a water inlet 53 and a water outlet 54, and the water inlet 53 is connected to the swimming pool 55.
[0060] Furthermore, the oil-water heat exchanger 5 includes a spiral pipe 56 and a fin 57. One end of the spiral pipe 56 is connected to the first pipe 51, and the other end of the spiral pipe 56 is connected to the second pipe 52. The fin 57 is provided on the spiral pipe 56. The fin 57 can provide a larger contact area, thereby improving the heat exchange efficiency.
[0061] exist Figures 1 to 8 In an optional embodiment, a water tank 7 is provided next to the oil-water heat exchanger 5 , the water tank 7 is connected to the water outlet 54 through a pipeline, and a cooler 71 is provided on the water tank 7 .
[0062] Cooler 71 includes a cooling housing 72, coolant 73, a compressor 74, a condenser 75, and a fan 76. Cooling housing 72 is mounted on water tank 7, coolant 73 is contained within cooling housing 72, compressor 74 is in communication with coolant 73, and is connected to condenser 75 via a pipe. Fan 76 is located adjacent to the pipe. A condensation pipe 77 is located adjacent to condenser 75 and is located within water tank 7. Compressor 74 pressurizes the condensate, which is then cooled by fan 76. Condenser 75 mechanically refrigerates the condensate, which in turn is cooled through condensation pipe 77. Operators can turn cooler 71 on and off as needed.
[0063] The present invention provides a server circulating heat dissipation device based on solar power supply, and the specific steps are as follows:
[0064] The first transmission shaft 17 is driven to rotate by a motor 18, driving the first pulley 15 to roll on the first fixed block 14. The first pulley 15 is provided with a first belt 16, thereby driving the second base plate 19 to slide on the first base plate 13. The second base plate 19 is provided with a second fixed block 20, and the second fixed block 20 is provided with a second pulley 21. The second pulley 21 is provided with a second belt 22. The second transmission shaft 23 is fixed to the third base plate 25. The first belt 16 and the second belt 22 are connected by a linkage block 24. The rotation of the first belt 16 drives the rotation of the second belt 22, thereby driving the third base plate 25 to move under the drive of the second belt 22. A stable connection component 3 is provided on the first base plate 13, the second base plate 19, and the third base plate 25. The stable connection component 3 is connected to the solar panel 12 and provides support for the solar panel 12. This design can ensure that the extension and retraction of the entire solar mechanism 1 can be controlled by a motor 18, which can greatly and stably increase the area of the solar panel 12 while saving space, increase the power generation speed and improve space utilization.
[0065] An oil tank 43 is provided between the server housing 41 and the server body 42. The oil tank 43 contains thermal oil, which has high thermal conductivity and further improves with increasing temperature. The thermal oil transfers heat to the water in the oil-water heat exchanger 5. This design effectively improves heat dissipation and ensures server performance.
[0066] By setting the spiral pipe 56 and the fin plate 57 in the oil-water heat exchanger 5, the spiral pipe 56 is longer and the fin plate 57 can increase the contact area between the spiral pipe 56 and the water flow. This design can effectively improve the heat exchange efficiency of the oil-water heat exchanger 5, thereby improving the heat dissipation effect.
[0067] The water flow from the oil-water heat exchanger 5 is transferred to the water tank 7 via a water pump. The water pump can be connected between the connecting pipe of the water tank 7 and the oil-water heat exchanger 5 by an operator skilled in the art. A cooler 71 is connected to the water tank 7. The coolant 73 in the cooler 71 is placed in a cooling shell 72. A compressor 74 compresses the coolant 73, a fan 76 cools the coolant 73, and a condenser 75 refrigerates the water. The cooler 71 can be adjusted according to the operator's actual needs. The water in the water tank 7 can be discharged into the swimming pool 55. When the swimming pool 55 needs to be heated, the cooler 71 is deactivated, and the water flow after heat exchange in the oil-water heat exchanger 5 can be used to heat the swimming pool 55. When the swimming pool 55 needs to be cooled, the cooler 71 is activated, and the cooled water flow can be used to cool the swimming pool 55. This design can intelligently adjust the water temperature of the swimming pool 55 while dissipating heat from the server.
[0068] The same or similar parts between the various embodiments in this specification can be referred to each other, and each embodiment focuses on the differences from other embodiments.
[0069] The above description is merely a specific embodiment of the present application, but the scope of protection of the present application is not limited thereto. Any changes or substitutions that can be easily conceived by a person skilled in the art within the technical scope disclosed in the present application should be included in the scope of protection of the present application. Therefore, the scope of protection of the present application should be based on the scope of protection of the claims.
Claims
1. A server circulation heat dissipation device based on solar power supply, characterized in that: include: A solar mechanism (1), comprising a solar telescopic assembly (11) and a solar panel (12), wherein the solar telescopic assembly (11) comprises a first base plate (13), a first fixing block (14), a first pulley (15), a first belt (16), a first transmission shaft (17), a motor (18), a second base plate (19), a second fixing block (20), a second pulley (21), a second belt (22), a second transmission shaft (23), a linkage block (24) and a third base plate (25), wherein the first base plate (13) is arranged on the ground, and both ends of the first base plate (13) are A first fixed block (14) is provided, the first transmission shafts (17) are respectively provided at both ends of the second base plate (19), the first pulleys (15) are respectively provided at both ends of the two first transmission shafts (17), the first pulleys (15) are rollingly connected to the first fixed block (14), the two first pulleys (15) on the same side of the second base plate (19) are connected through the first belt (16), one of the first transmission shafts (17) is connected to the output end of the motor (18), and the motor (18) drives the second base plate (19) to slide on the first base plate (13); The second base plate (19) has two ends connected to second fixed blocks (20), the second pulley (21) has two ends connected to second transmission shafts (23), the two second transmission shafts (23) are both connected to the second pulley (21), the second pulley (21) is rollingly connected to the second fixed block (20), the linkage block (24) is L-shaped, one end of the linkage block (24) is connected to the first belt (16), and the other end of the linkage block (24) is connected to the second belt (22); A first notch (26) is provided on the first fixing block (14); a limiting rod (27) is provided at the bottom end of the second bottom plate (19); the limiting rod (27) is inserted into the first notch (26); a stable connection component (3) is provided on one side of the first bottom plate (13), the second bottom plate (19) and the third bottom plate (25); and the solar panel (12) is connected to the stable connection component (3); A server mechanism (4), the server mechanism (4) comprising a server housing (41) and a server body (42), an oil tank (43) being provided between the server housing (41) and the server body (42), and a water inlet (44) and a water outlet (45) being provided on the server housing (41); An oil-water heat exchanger (5), the oil-water heat exchanger (5) being connected to the water outlet (45) via a first pipe (51), the oil-water heat exchanger (5) being connected to the water inlet (44) via a second pipe (52), the oil-water heat exchanger (5) being provided with a water inlet (53) and a water outlet (54), the water inlet (53) being connected to a swimming pool (55); The stable connection component (3) includes a stable connection block (31) and a sliding buckle (32); sliding seats (33) are provided at both ends of the solar panel (12); the solar panel (12) connected to the first base plate (13) is slidably connected to the sliding buckle (32) in the stable connection component (3) on the second base plate (19); and the solar panel (12) connected to the second base plate (19) is slidably connected to the sliding buckle (32) in the stable connection component (3) on the third base plate (25).
2. The server circulation heat dissipation device based on solar power supply according to claim 1, characterized in that: A limiting plate (28) is provided on one side of the solar energy mechanism (1), and the limiting plate (28) is connected to the first bottom plate (13) via bolts.
3. The server circulation heat dissipation device based on solar power supply according to claim 1, characterized in that: The stable connection block (31) is arranged at the other end of the third bottom plate (25).
4. The server circulation heat dissipation device based on solar power supply according to claim 1, characterized in that: The solar energy mechanism (1) is respectively connected to a storage battery (6) and an inverter (61), and the inverter (61) is connected to an external power grid.
5. The server circulation heat dissipation device based on solar power supply according to claim 4, characterized in that: The inverter (61) is connected to a power control cabinet (62), the power control cabinet (62) is connected to the server mechanism (4), and heat-conducting oil is placed in the oil tank (43).
6. The server circulation heat dissipation device based on solar power supply according to claim 1, characterized in that: An oil pump (63) is provided at the middle end of the first pipeline (51).
7. The server circulation heat dissipation device based on solar power supply according to claim 1, characterized in that: The oil-water heat exchanger (5) comprises a spiral pipe (56) and a fin plate (57), one end of the spiral pipe (56) is connected to the first pipe (51), the other end of the spiral pipe (56) is connected to the second pipe (52), and the fin plate (57) is arranged on the spiral pipe (56).
8. The server circulation heat dissipation device based on solar power supply according to claim 1, characterized in that: A water tank (7) is provided beside the oil-water heat exchanger (5), the water tank (7) is connected to the water outlet (54) through a pipeline, and a cooler (71) is provided on the water tank (7).
9. The server circulation heat dissipation device based on solar power supply according to claim 8, characterized in that: The cooler (71) comprises a cooling shell (72), a coolant (73), a compressor (74), a condenser (75) and a fan (76); the cooling shell (72) is arranged on the water tank (7); the coolant (73) is arranged in the cooling shell (72); the compressor (74) is in communication with the coolant (73); the compressor (74) is connected to the condenser (75) through a pipeline; the fan (76) is arranged adjacent to the pipeline; a condensation pipeline (77) is arranged next to the condenser (75); and the condensation pipeline (77) is arranged in the water tank (7).
Citation Information
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